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显著提高太阳能利用的绿色激发效率:红色磷光体BaZnS:Eu,X共掺杂卤化物离子(X = Cl、Br、I)

Remarkably Enhancing Green-Excitation Efficiency for Solar Energy Utilization: Red Phosphors BaZnS:Eu, X Co-Doped Halide Ions (X = Cl, Br, I).

作者信息

Luo Tingting, Du Yun, Qiu Zhongxian, Li Yanmei, Wang Xiaofang, Zhou Wenli, Zhang Jilin, Yu Liping, Lian Shixun

机构信息

Key Laboratory of Chemical Biology & Traditional Chinese Medicine Research (Ministry of Education) and Key Laboratory of Sustainable Resources Processing and Advanced Materials of Hunan Province, College of Chemistry and Chemical Engineering, Hunan Normal University , Changsha, Hunan 410081, China.

出版信息

Inorg Chem. 2017 May 15;56(10):5720-5727. doi: 10.1021/acs.inorgchem.7b00335. Epub 2017 Apr 21.

Abstract

Eu-activated BaZnS has been reported as a red phosphor with a broad emission band peaking at 650 nm under blue excitation for white-LED. In this study, BaZnS:Eu, X (X = F, Cl, Br, I) phosphors doped with halide ions were prepared by traditional high-temperature solid-state reaction. Phase identification of powders was performed by X-ray powder diffraction analysis, confirming the existence of single-phase BaZnS crystals without dopant. The corresponding excitation spectra showed an additional broad band in the green region peaking at 550 nm when the phosphor was halogenated except by the smallest F. It was proved that the green-excitation efficiency successively strengthened from Cl, to Br, to I, which suggested larger halide ions made a greater contribution to the further splitting of the t energy level of the doped Eu ions in the host BaZnS, and the optimized formula BaZnS:Eu, I showed a potential application in solar spectral conversion for agricultural greenhouse and solar cell. Defect chemistry theory and crystal field theory provided insights into the key role of halide ions in enhancing green-excitation efficiency.

摘要

据报道,铕激活的硫化钡锌(BaZnS:Eu)是一种红色荧光粉,在蓝光激发下用于白光发光二极管(white-LED)时,其发射带较宽,峰值在650nm。在本研究中,通过传统高温固相反应制备了掺杂卤离子的BaZnS:Eu,X(X = F、Cl、Br、I)荧光粉。通过X射线粉末衍射分析对粉末进行相鉴定,证实存在无掺杂剂的单相BaZnS晶体。相应的激发光谱表明,当荧光粉被卤化时,除了最小的F之外,在550nm处的绿色区域出现了一个额外的宽带。结果证明,从Cl到Br再到I,绿色激发效率依次增强,这表明较大的卤离子对主体BaZnS中掺杂的Eu离子的t能级的进一步分裂贡献更大,优化后的配方BaZnS:Eu,I在农业温室和太阳能电池的太阳光谱转换中显示出潜在的应用价值。缺陷化学理论和晶体场理论为卤离子在提高绿色激发效率中的关键作用提供了见解。

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